esphome-ratgdo/components/ratgdo/ratgdo.cpp

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/************************************
* Rage
* Against
* The
* Garage
* Door
* Opener
*
* Copyright (C) 2022 Paul Wieland
*
* GNU GENERAL PUBLIC LICENSE
************************************/
#include "ratgdo.h"
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#include "ratgdo_child.h"
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#include "ratgdo_state.h"
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#include "esphome/core/log.h"
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namespace esphome {
namespace ratgdo {
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static const char* const TAG = "ratgdo";
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static const int STARTUP_DELAY = 2000; // delay before enabling interrupts
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/*************************** DRY CONTACT CONTROL OF LIGHT & DOOR
* ***************************/
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void IRAM_ATTR HOT RATGDOStore::isrDoorOpen(RATGDOStore* arg)
{
static unsigned long lastOpenDoorTime = 0;
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unsigned long currentMillis = millis();
// Prevent ISR during the first 2 seconds after reboot
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if (currentMillis < STARTUP_DELAY)
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return;
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if (!arg->trigger_open.digital_read()) {
// save the time of the falling edge
lastOpenDoorTime = currentMillis;
} else if (currentMillis - lastOpenDoorTime > 500 && currentMillis - lastOpenDoorTime < 10000) {
// now see if the rising edge was between 500ms and 10 seconds after the
// falling edge
arg->dryContactDoorOpen = true;
}
}
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void IRAM_ATTR HOT RATGDOStore::isrDoorClose(RATGDOStore* arg)
{
static unsigned long lastCloseDoorTime = 0;
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unsigned long currentMillis = millis();
// Prevent ISR during the first 2 seconds after reboot
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if (currentMillis < STARTUP_DELAY)
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return;
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if (!arg->trigger_close.digital_read()) {
// save the time of the falling edge
lastCloseDoorTime = currentMillis;
} else if (currentMillis - lastCloseDoorTime > 500 && currentMillis - lastCloseDoorTime < 10000) {
// now see if the rising edge was between 500ms and 10 seconds after the
// falling edge
arg->dryContactDoorClose = true;
}
}
void IRAM_ATTR HOT RATGDOStore::isrLight(RATGDOStore* arg)
{
static unsigned long lastToggleLightTime = 0;
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unsigned long currentMillis = millis();
// Prevent ISR during the first 2 seconds after reboot
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if (currentMillis < STARTUP_DELAY)
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return;
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if (!arg->trigger_light.digital_read()) {
// save the time of the falling edge
lastToggleLightTime = currentMillis;
} else if (currentMillis - lastToggleLightTime > 500 && currentMillis - lastToggleLightTime < 10000) {
// now see if the rising edge was between 500ms and 10 seconds after the
// falling edge
arg->dryContactToggleLight = true;
}
}
void IRAM_ATTR HOT RATGDOStore::isrObstruction(RATGDOStore* arg)
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{
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if (arg->input_obst.digital_read()) {
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arg->lastObstructionHigh = millis();
} else {
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arg->obstructionLowCount++;
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}
}
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void RATGDOComponent::setup()
{
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this->pref_ = global_preferences->make_preference<int>(734874333U);
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if (!this->pref_.load(&this->rollingCodeCounter)) {
this->rollingCodeCounter = 0;
}
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this->output_gdo_pin_->setup();
this->input_gdo_pin_->setup();
this->input_obst_pin_->setup();
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this->trigger_open_pin_->setup();
this->trigger_close_pin_->setup();
this->trigger_light_pin_->setup();
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this->status_door_pin_->setup();
this->status_obst_pin_->setup();
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this->store_.input_obst = this->input_obst_pin_->to_isr();
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this->store_.trigger_open = this->trigger_open_pin_->to_isr();
this->store_.trigger_close = this->trigger_close_pin_->to_isr();
this->store_.trigger_light = this->trigger_light_pin_->to_isr();
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this->trigger_open_pin_->pin_mode(gpio::FLAG_INPUT | gpio::FLAG_PULLUP);
this->trigger_close_pin_->pin_mode(gpio::FLAG_INPUT | gpio::FLAG_PULLUP);
this->trigger_light_pin_->pin_mode(gpio::FLAG_INPUT | gpio::FLAG_PULLUP);
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this->status_door_pin_->pin_mode(gpio::FLAG_OUTPUT);
this->status_obst_pin_->pin_mode(gpio::FLAG_OUTPUT);
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this->output_gdo_pin_->pin_mode(gpio::FLAG_OUTPUT);
this->input_gdo_pin_->pin_mode(gpio::FLAG_INPUT | gpio::FLAG_PULLUP);
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this->input_obst_pin_->pin_mode(gpio::FLAG_INPUT);
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this->check_uart_settings(9600, 1, esphome::uart::UART_CONFIG_PARITY_NONE, 8);
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this->trigger_open_pin_->attach_interrupt(RATGDOStore::isrDoorOpen, &this->store_, gpio::INTERRUPT_ANY_EDGE);
this->trigger_close_pin_->attach_interrupt(RATGDOStore::isrDoorClose, &this->store_, gpio::INTERRUPT_ANY_EDGE);
this->trigger_light_pin_->attach_interrupt(RATGDOStore::isrLight, &this->store_, gpio::INTERRUPT_ANY_EDGE);
this->input_obst_pin_->attach_interrupt(RATGDOStore::isrObstruction, &this->store_, gpio::INTERRUPT_ANY_EDGE);
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ESP_LOGD(TAG, "Syncing rolling code counter after reboot...");
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sync(); // reboot/sync to the opener on startup
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}
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void RATGDOComponent::loop()
{
obstructionLoop();
gdoStateLoop();
dryContactLoop();
statusUpdateLoop();
}
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void RATGDOComponent::dump_config()
{
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ESP_LOGCONFIG(TAG, "Setting up RATGDO...");
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LOG_PIN(" Output GDO Pin: ", this->output_gdo_pin_);
LOG_PIN(" Input GDO Pin: ", this->input_gdo_pin_);
LOG_PIN(" Input Obstruction Pin: ", this->input_obst_pin_);
LOG_PIN(" Trigger Open Pin: ", this->trigger_open_pin_);
LOG_PIN(" Trigger Close Pin: ", this->trigger_close_pin_);
LOG_PIN(" Trigger Light Pin: ", this->trigger_light_pin_);
LOG_PIN(" Status Door Pin: ", this->status_door_pin_);
LOG_PIN(" Status Obstruction Pin: ", this->status_obst_pin_);
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}
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void RATGDOComponent::readRollingCode(uint8_t& door, uint8_t& light, uint8_t& lock, uint8_t& motion, uint8_t& obstruction)
{
uint32_t rolling = 0;
uint64_t fixed = 0;
uint32_t data = 0;
uint16_t cmd = 0;
uint8_t nibble = 0;
uint8_t byte1 = 0;
uint8_t byte2 = 0;
decode_wireline(this->rxRollingCode, &rolling, &fixed, &data);
cmd = ((fixed >> 24) & 0xf00) | (data & 0xff);
nibble = (data >> 8) & 0xf;
byte1 = (data >> 16) & 0xff;
byte2 = (data >> 24) & 0xff;
if (cmd == 0x81) {
door = nibble;
light = (byte2 >> 1) & 1;
lock = byte2 & 1;
motion = 0; // when the status message is read, reset motion state to 0|clear
// obstruction = (byte1 >> 6) & 1; // unreliable due to the time it takes to register an obstruction
} else if (cmd == 0x281) {
light ^= 1; // toggle bit
} else if (cmd == 0x84) {
} else if (cmd == 0x285) {
motion = 1; // toggle bit
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}
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}
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void RATGDOComponent::getRollingCode(Commands command)
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{
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uint64_t id = 0x539;
uint64_t fixed = 0;
uint32_t data = 0;
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switch (command) {
case REBOOT1:
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fixed = 0x400000000;
data = 0x0000618b;
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break;
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case REBOOT2:
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fixed = 0;
data = 0x01009080;
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break;
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case REBOOT3:
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fixed = 0;
data = 0x0000b1a0;
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break;
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case REBOOT4:
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fixed = 0;
data = 0x01009080;
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break;
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case REBOOT5:
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fixed = 0x300000000;
data = 0x00008092;
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break;
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case REBOOT6:
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fixed = 0x300000000;
data = 0x00008092;
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break;
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case DOOR1:
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fixed = 0x200000000;
data = 0x01018280;
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break;
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case DOOR2:
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fixed = 0x200000000;
data = 0x01009280;
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break;
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case LIGHT:
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fixed = 0x200000000;
data = 0x00009281;
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break;
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case LOCK:
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fixed = 0x0100000000;
data = 0x0000728c;
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break;
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default:
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ESP_LOGD(TAG, "ERROR: Invalid command");
return;
}
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ESP_LOGD(TAG, "Command: %d rollingCodeCounter=%d", command, this->rollingCodeCounter);
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fixed = fixed | id;
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encode_wireline(this->rollingCodeCounter, fixed, data, this->txRollingCode);
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printRollingCode();
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if (command != Commands::DOOR1) { // door2 is created with same counter and should always be called after door1
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ESP_LOGD(TAG, "Incrementing rolling code counter");
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this->rollingCodeCounter = (this->rollingCodeCounter + 1) & 0xfffffff;
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}
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return;
}
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void RATGDOComponent::printRollingCode()
{
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ESP_LOGD(TAG, "Counter: %d Send code: [%02X%02X%02X%02X%02X%02X%02X%02X%02X%02X%02X%02X%02X%02X%02X%02X%02X%02X%02X]",
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this->rollingCodeCounter,
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this->txRollingCode[0],
this->txRollingCode[1],
this->txRollingCode[2],
this->txRollingCode[3],
this->txRollingCode[4],
this->txRollingCode[5],
this->txRollingCode[6],
this->txRollingCode[7],
this->txRollingCode[8],
this->txRollingCode[9],
this->txRollingCode[10],
this->txRollingCode[11],
this->txRollingCode[12],
this->txRollingCode[13],
this->txRollingCode[14],
this->txRollingCode[15],
this->txRollingCode[16],
this->txRollingCode[17],
this->txRollingCode[18]);
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}
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// handle changes to the dry contact state
void RATGDOComponent::dryContactLoop()
{
if (this->store_.dryContactDoorOpen) {
ESP_LOGD(TAG, "Dry Contact: open the door");
this->store_.dryContactDoorOpen = false;
openDoor();
}
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if (this->store_.dryContactDoorClose) {
ESP_LOGD(TAG, "Dry Contact: close the door");
this->store_.dryContactDoorClose = false;
closeDoor();
}
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if (this->store_.dryContactToggleLight) {
ESP_LOGD(TAG, "Dry Contact: toggle the light");
this->store_.dryContactToggleLight = false;
toggleLight();
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}
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}
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/*************************** OBSTRUCTION DETECTION ***************************/
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void RATGDOComponent::obstructionLoop()
{
long currentMillis = millis();
static unsigned long lastMillis = 0;
// the obstruction sensor has 3 states: clear (HIGH with LOW pulse every 7ms), obstructed (HIGH), asleep (LOW)
// the transitions between awake and asleep are tricky because the voltage drops slowly when falling asleep
// and is high without pulses when waking up
// If at least 3 low pulses are counted within 50ms, the door is awake, not obstructed and we don't have to check anything else
// Every 50ms
if (currentMillis - lastMillis > 50) {
// check to see if we got between 3 and 8 low pulses on the line
if (this->store_.obstructionLowCount >= 3 && this->store_.obstructionLowCount <= 8) {
// obstructionCleared();
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this->store_.obstructionState = ObstructionState::OBSTRUCTION_STATE_CLEAR;
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// if there have been no pulses the line is steady high or low
} else if (this->store_.obstructionLowCount == 0) {
// if the line is high and the last high pulse was more than 70ms ago, then there is an obstruction present
if (this->input_obst_pin_->digital_read() && currentMillis - this->store_.lastObstructionHigh > 70) {
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this->store_.obstructionState = ObstructionState::OBSTRUCTION_STATE_OBSTRUCTED;
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// obstructionDetected();
} else {
// asleep
}
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}
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lastMillis = currentMillis;
this->store_.obstructionLowCount = 0;
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}
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}
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void RATGDOComponent::gdoStateLoop()
{
if (!this->available()) {
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// ESP_LOGD(TAG, "No data available input:%d output:%d", this->input_gdo_pin_->get_pin(), this->output_gdo_pin_->get_pin());
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return;
}
uint8_t serData;
if (!this->read_byte(&serData)) {
ESP_LOGD(TAG, "Failed to read byte");
return;
}
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static uint32_t msgStart;
static bool reading = false;
static uint16_t byteCount = 0;
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if (!reading) {
// shift serial byte onto msg start
msgStart <<= 8;
msgStart |= serData;
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// truncate to 3 bytes
msgStart &= 0x00FFFFFF;
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// if we are at the start of a message, capture the next 16 bytes
if (msgStart == 0x550100) {
byteCount = 3;
rxRollingCode[0] = 0x55;
rxRollingCode[1] = 0x01;
rxRollingCode[2] = 0x00;
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reading = true;
return;
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}
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}
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if (reading) {
this->rxRollingCode[byteCount] = serData;
byteCount++;
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if (byteCount == 19) {
reading = false;
msgStart = 0;
byteCount = 0;
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readRollingCode(this->store_.doorState, this->store_.lightState, this->store_.lockState, this->store_.motionState, this->store_.obstructionState);
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}
}
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}
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void RATGDOComponent::statusUpdateLoop()
{
// initialize to unknown
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static uint8_t previousDoorState = DoorState::DOOR_STATE_UNKNOWN;
static uint8_t previousLightState = LightState::LIGHT_STATE_UNKNOWN;
static uint8_t previousLockState = LockState::LOCK_STATE_UNKNOWN;
static uint8_t previousObstructionState = ObstructionState::OBSTRUCTION_STATE_UNKNOWN;
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if (this->store_.doorState != previousDoorState)
sendDoorStatus();
if (this->store_.lightState != previousLightState)
sendLightStatus();
if (this->store_.lockState != previousLockState)
sendLockStatus();
if (this->store_.obstructionState != previousObstructionState)
sendObstructionStatus();
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if (this->store_.motionState == MotionState::MOTION_STATE_DETECTED) {
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sendMotionStatus();
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this->store_.motionState = MotionState::MOTION_STATE_CLEAR;
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}
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previousDoorState = this->store_.doorState;
previousLightState = this->store_.lightState;
previousLockState = this->store_.lockState;
previousObstructionState = this->store_.obstructionState;
}
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void RATGDOComponent::sendDoorStatus()
{
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DoorState val = static_cast<DoorState>(this->store_.doorState);
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ESP_LOGD(TAG, "Door state: %s", door_state_to_string(val));
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for (auto* child : this->children_) {
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child->on_door_state(val);
}
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this->status_door_pin_->digital_write(this->store_.doorState == 1);
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}
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void RATGDOComponent::sendLightStatus()
{
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LightState val = static_cast<LightState>(this->store_.lightState);
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ESP_LOGD(TAG, "Light state %s (%d)", light_state_to_string(val), this->store_.lightState);
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for (auto* child : this->children_) {
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child->on_light_state(val);
}
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}
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void RATGDOComponent::sendLockStatus()
{
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LockState val = static_cast<LockState>(this->store_.lockState);
ESP_LOGD(TAG, "Lock state %s", lock_state_to_string(val));
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for (auto* child : this->children_) {
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child->on_lock_state(val);
}
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}
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void RATGDOComponent::sendMotionStatus()
{
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MotionState val = static_cast<MotionState>(this->store_.motionState);
ESP_LOGD(TAG, "Motion state %s", motion_state_to_string(val));
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for (auto* child : this->children_) {
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child->on_motion_state(val);
}
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}
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void RATGDOComponent::sendObstructionStatus()
{
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ObstructionState val = static_cast<ObstructionState>(this->store_.obstructionState);
ESP_LOGD(TAG, "Obstruction state %s", obstruction_state_to_string(val));
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for (auto* child : this->children_) {
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child->on_obstruction_state(val);
}
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this->status_obst_pin_->digital_write(this->store_.obstructionState == 0);
}
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/************************* DOOR COMMUNICATION *************************/
/*
* Transmit a message to the door opener over uart1
* The TX1 pin is controlling a transistor, so the logic is inverted
* A HIGH state on TX1 will pull the 12v line LOW
*
* The opener requires a specific duration low/high pulse before it will accept
* a message
*/
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void RATGDOComponent::transmit(Commands command)
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{
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getRollingCode(command);
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this->output_gdo_pin_->digital_write(true); // pull the line high for 1305 micros so the
// door opener responds to the message
delayMicroseconds(1305);
this->output_gdo_pin_->digital_write(false); // bring the line low
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delayMicroseconds(1260); // "LOW" pulse duration before the message start
this->write_array(this->txRollingCode, CODE_LENGTH);
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}
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void RATGDOComponent::sync()
{
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transmit(Commands::REBOOT1);
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delay(65);
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transmit(Commands::REBOOT2);
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delay(65);
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transmit(Commands::REBOOT3);
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delay(65);
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transmit(Commands::REBOOT4);
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delay(65);
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transmit(Commands::REBOOT5);
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delay(65);
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sendCommandAndSaveCounter(Commands::REBOOT6);
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delay(65);
}
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void RATGDOComponent::openDoor()
{
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if (this->store_.doorState == DoorState::DOOR_STATE_OPEN || this->store_.doorState == DoorState::DOOR_STATE_OPENING) {
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ESP_LOGD(TAG, "The door is already %s", door_state_to_string(static_cast<DoorState>(this->store_.doorState)));
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return;
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}
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toggleDoor();
}
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void RATGDOComponent::closeDoor()
{
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if (this->store_.doorState == DoorState::DOOR_STATE_CLOSED || this->store_.doorState == DoorState::DOOR_STATE_CLOSING) {
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ESP_LOGD(TAG, "The door is already %s", door_state_to_string(static_cast<DoorState>(this->store_.doorState)));
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return;
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}
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toggleDoor();
}
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void RATGDOComponent::stopDoor()
{
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if (this->store_.doorState == DoorState::DOOR_STATE_OPENING || this->store_.doorState == DoorState::DOOR_STATE_CLOSING) {
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toggleDoor();
} else {
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ESP_LOGD(TAG, "The door is not moving.");
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}
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}
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void RATGDOComponent::toggleDoor()
{
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transmit(Commands::DOOR1);
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delay(40);
sendCommandAndSaveCounter(Commands::DOOR2);
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}
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void RATGDOComponent::lightOn()
{
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if (this->store_.lightState == LightState::LIGHT_STATE_ON) {
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ESP_LOGD(TAG, "already on");
} else {
toggleLight();
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}
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}
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void RATGDOComponent::lightOff()
{
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if (this->store_.lightState == LightState::LIGHT_STATE_OFF) {
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ESP_LOGD(TAG, "already off");
} else {
toggleLight();
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}
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}
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void RATGDOComponent::toggleLight()
{
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sendCommandAndSaveCounter(Commands::LIGHT);
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}
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// Lock functions
void RATGDOComponent::lock()
{
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if (this->store_.lockState == LockState::LOCK_STATE_LOCKED) {
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ESP_LOGD(TAG, "already locked");
} else {
toggleLock();
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}
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}
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void RATGDOComponent::unlock()
{
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if (this->store_.lockState == LockState::LOCK_STATE_UNLOCKED) {
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ESP_LOGD(TAG, "already unlocked");
} else {
toggleLock();
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}
}
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void RATGDOComponent::toggleLock()
{
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sendCommandAndSaveCounter(Commands::LOCK);
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}
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void RATGDOComponent::sendCommandAndSaveCounter(Commands command)
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{
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transmit(command);
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this->pref_.save(&this->rollingCodeCounter);
}
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void RATGDOComponent::register_child(RATGDOClient* obj)
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{
this->children_.push_back(obj);
obj->set_parent(this);
}
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} // namespace ratgdo
} // namespace esphome